Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm compiling this program using Code::Blocks 10.05 however normally I will get about 10 iterations done before it starts producing Nan in every single output. I was wondering if this is a problem caused by using the cos and sin functions and if there was a decent work around to avoid this?

I have to produce a lot of iterates because I am working on a project for University so it has to be accurate too. I looked up a few articles about how to avoid using sin and cos though I need to follow a few formulas rigorously otherwise the results I produce may be inaccurate so I'm not sure whether to compromise.

    struct Particle // Need to define what qualities our particle has
{
   double dPosition;
   double dAngle;

};

Particle Subject;

void M1(double &x, double &y) //Defines movement if particle doesn't touch inner   boundary
{
    x = x + 2*y;
}

double d = 0.25; //This can and will be changed when I need to find a distance between
                // the two cricles at a later stage


void M2(double &x,double &y, double d) //Defines movement of a particle if it impacts the inner boundary
{
    double z = asin(-(sin(y)+d*cos(x + y))/0.35);
    double y1 = y;
    y = asin(-0.35*sin(z) + d*cos(x + y + 2*z));
    x = y + y1 + x + 2*z;
}

int main()
{
    cout << "Please tell me where you want this particle to start positions-wise? (Between 0 and 2PI" << endl;
    cin >> Subject.dPosition;
    cout << "Please tell me the angle that you would like it to make with the normal? (Between 0 and PI/2)" << endl;
    cin >> Subject.dAngle;
    cout << "How far would you like the distances of the two middle circles to be?" << endl;
    double d;
    cin >> d;

    // These two functions are to understand where the experiment begins from.
    // I may add a function to change where the circle starts however I will use radius = 0.35 throughout

    cout << "So position is: " << Subject.dPosition << endl;
    cout << "And angle with the normal is: " << Subject.dAngle <<endl;

    int n=0;
    while (n <= 100) //This is used to iterate the process and create an array of Particle data points
    {               // in order to use this data to build up Poincare diagrams.

    {
        while (Subject.dPosition > 2*M_PI)
            Subject.dPosition = Subject.dPosition - 2*M_PI;
    }
    {
        if (0.35 >= abs(0.35*cos(Subject.dPosition + Subject.dAngle)+sin(Subject.dAngle))) //This is the condition of hitting the inner boundary
            M2(Subject.dPosition, Subject.dAngle, d); //Inner boundary collision
        else
            M1(Subject.dPosition, Subject.dAngle); // Outer boundary collision
    };
    cout << "So position is: " << Subject.dPosition << endl;
    cout << "And angle with the normal is: " << Subject.dAngle <<endl;
    n++;
}
    return 0;
}
share|improve this question
1  
I'm putting my money on the asin() function being the problem. Arcsin is not defined for all inputs. And by problem I mean it's behaving correctly, but the result is undesired. –  Brian Duncan Dec 22 '12 at 23:48

2 Answers 2

up vote 0 down vote accepted

If the value is outside of [-1,+1] and passed to asin(), the result will be nan

If you need to check for Nan, try the following

if( value != value ){
    printf("value is nan\n");
}
share|improve this answer
    
Thanks very much! I managed to fix it and add in some if loops to sort out when it drifts below -1 or above 1. –  Conor Glasman Dec 29 '12 at 17:01

Nan is shown in c++ as an indication of infinite, zero devision, and some other variations of non representable numbers.

Edit:

As pointed by Matteo Itallia, inf is used for infinite/zero division. I found these approaches:

template<typename T>
inline bool isnan(T value) {
    return value != value;
}

// requires #include <limits>
template<typename T>
inline bool isinf(T value) {
    return std::numeric_limits<T>::has_infinity &&
        value == std::numeric_limits<T>::infinity();
}

Reference: http://bytes.com/topic/c/answers/588254-how-check-double-inf-nan

share|improve this answer
1  
Actually, zero division will produce Inf (unless the dividend is NaN itself). –  Matteo Italia Dec 22 '12 at 23:49
    
@MatteoItalia thanks for pointing it out; I've posted an edit. –  Rubens Dec 22 '12 at 23:59

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.